Zhang Jun-Cheng, Xu Chao-Nan, Kamimura Sunao, Terasawa Yujin, Yamada Hiroshi, Wang Xusheng
Interdisciplinary Graduate School of Engineering Science, Kyusyu University, Fukuoka 816-8580, Japan.
Opt Express. 2013 Jun 3;21(11):12976-86. doi: 10.1364/OE.21.012976.
The elastico-mechanoluminescence (EML) properties of CaZnOS:Mn2+ are investigated. The CaZnOS:Mn2+/epoxy resin composite can simultaneously "feel" (sense) and "see" (image) various types of mechanical stress over a wide energy and frequency range (ultrasonic vibration, impact, friction and compression) as an intense red emission (610 nm) from Mn2+ ions. Further, the accurate linear relation between emission intensity and different stress parameters (intensity, energy and deformation rate) are confirmed. The EML mechanism is explained using a piezoelectrically induced trapped carrier excitation mode. All the results imply that CaZnOS:Mn2+ has potential as a stress probe to sense and image multiple mechanical stresses and decipher the stress intensity distribution.
研究了CaZnOS:Mn2+的弹性机械发光(EML)特性。CaZnOS:Mn2+/环氧树脂复合材料能够在很宽的能量和频率范围(超声振动、冲击、摩擦和压缩)内,作为来自Mn2+离子的强烈红色发射(610nm)同时“感知”和“成像”各种类型的机械应力。此外,还证实了发射强度与不同应力参数(强度、能量和变形率)之间的精确线性关系。采用压电诱导俘获载流子激发模式解释了EML机制。所有结果表明,CaZnOS:Mn2+有潜力作为一种应力探针,用于感知和成像多种机械应力并解读应力强度分布。